Quantitation

    Purity / assay determination with GC-UV.

    Quantitative purity and assay measurements with built-in spectral peak-purity confirmation.

    What this objective means

    Purity/assay work answers the question 'how much of the target compound is in this sample, and is the peak really one substance?'. GC-UV combines a calibrated quantitative response with a UV spectrum at every retention time, so assay values come with orthogonal identity confirmation.

    Why GC-UV fits

    Vapour-phase UV cross-sections are highly reproducible, giving a quantitative response that is independent of co-eluting non-absorbers — and the spectrum at the peak apex confirms the peak is the target compound.

    Reference

    Schug, K. A. et al., Anal. Chem. 86 (16), 8329–8335 (2014).

    Recommended model

    INSCAN Lab

    Benchtop precision and a full UV spectral library suit routine assay workflows.

    Typical turnaround

    3–5 business days

    Typical sample volume

    10–500 mg solid / 0.5–5 mL liquid

    Typical matrices

    Pharma formulations & APIsEssential oils & flavorsSpecialty gasesBattery electrolytes

    Frequently asked questions

    How does GC-UV improve assay accuracy versus GC-FID?

    GC-FID gives one number per peak. GC-UV gives a number plus a vapour-phase UV spectrum, so co-elution that would silently bias an FID assay is detected and can be deconvolved.

    Can GC-UV replace HPLC for purity testing?

    For volatile and semi-volatile actives, yes — GC-UV often delivers tighter precision and better isomer selectivity than HPLC-UV. For non-volatile actives, HPLC remains the right tool.

    What precision can I expect?

    Typical %RSD is 0.5–2% on validated assay methods, comparable to GC-FID with the added benefit of identity confirmation.

    Related publications

    Related in Quantitation

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